Motion-onset VEPs to translating, radial, rotating and spiral stimuli
Jazyk angličtina Země Nizozemsko Médium print
Typ dokumentu srovnávací studie, časopisecké články, práce podpořená grantem
- MeSH
- dospělí MeSH
- lidé středního věku MeSH
- lidé MeSH
- magnetoencefalografie MeSH
- pohyb těles * MeSH
- referenční hodnoty MeSH
- senzitivita a specificita MeSH
- světelná stimulace metody MeSH
- zraková pole fyziologie MeSH
- zrakové evokované potenciály fyziologie MeSH
- zrakové korové centrum fyziologie MeSH
- Check Tag
- dospělí MeSH
- lidé středního věku MeSH
- lidé MeSH
- mužské pohlaví MeSH
- ženské pohlaví MeSH
- Publikační typ
- časopisecké články MeSH
- práce podpořená grantem MeSH
- srovnávací studie MeSH
Motion-onset related visual evoked potentials (M-VEPs) were recorded as a result of the three basic (translating, radial and rotating) and one complex (spiral) motion stimulations in five subjects. Low contrast, retinotopically scaled patterns evoked potentials with major motion-onset specific negativity N160 with maximum in the parieto-temporal region. All multidirectional motion stimuli elicited the motion-onset response of significantly higher amplitude and shorter latency compared to the translating (unidirectional) motion. The rotation-onset evoked potentials had significantly shorter latencies than the rest of explored stimuli. The most stable responses with the largest N160 amplitude were recorded to the radial motion. After masking of the central 20 degrees of the visual field these motion-onset VEPs were acquired without statistically significant amplitude drop. The efficiency and usefulness of the radial stimulus is presented in two clinical cases.
Zobrazit více v PubMed
Vision Res. 1998 Jun;38(12):1731-43 PubMed
Vision Res. 1995 Jan;35(2):197-205 PubMed
Vision Res. 1997 Dec;37(23):3399-405 PubMed
Brain Res Cogn Brain Res. 1993 Oct;1(3):169-74 PubMed
Doc Ophthalmol. 1992;80(1):83-9 PubMed
Brain Res. 1972 Jan 28;36(2):453-8 PubMed
Vision Res. 1992 Jan;32(1):81-7 PubMed
Doc Ophthalmol. 1990 Sep;75(2):165-73 PubMed
J Neurosci. 1996 Aug 1;16(15):4716-32 PubMed
Doc Ophthalmol. 1998-1999;95(3-4):315-33 PubMed
Electroencephalogr Clin Neurophysiol. 1989 Mar-Apr;74(2):81-7 PubMed
Vision Res. 1994 Jun;34(12):1541-7 PubMed
Clin Neurophysiol. 2003 Jul;114(7):1359-66 PubMed
Nat Neurosci. 2002 Jan;5(1):17-8 PubMed
Vision Res. 1986;26(1):161-79 PubMed
Vision Res. 2004 Jan;44(2):119-34 PubMed
Doc Ophthalmol. 1990 Aug;75(1):67-72 PubMed
Acta Neurobiol Exp (Wars). 1988;48(5):239-49 PubMed
Vision Res. 1996 Jan;36(1):181-90 PubMed
Vision Res. 1997 Jul;37(13):1845-9 PubMed
J Vis. 2003;3(6):432-9 PubMed
J Neurol Sci. 1998 Apr 1;156(2):186-94 PubMed
Doc Ophthalmol. 1992;81(2):209-18 PubMed
Electroencephalogr Clin Neurophysiol. 1996 Jul;100(4):287-98 PubMed
Vision Res. 1996 Oct;36(20):3281-92 PubMed
Nature. 1968 Feb 17;217(5129):677-8 PubMed
Optic nerve involvement in patients with Lyme neuroborreliosis: an electrophysiological study
VEP examination with new portable device
Effect of Dioptric Blur on Pattern-Reversal and Motion-Onset VEPs as Used in Clinical Research
Pattern- and motion-related visual evoked potentials in HIV-infected adults
Electrophysiological testing of visual function after mirror telescope implantation: a case report
Difficulties of motion-onset VEP interpretation in school-age children
Visual mismatch negativity in the dorsal stream is independent of concurrent visual task difficulty
An electrophysiological study of visual processing in spinocerebellar ataxia type 2 (SCA2)
Visual evoked potentials to pattern, motion and cognitive stimuli in Alzheimer's disease
Ophthalmological examination and VEPs in preterm children with perinatal CNS involvement